Kiruna-Type Iron Oxide-Apatite (IOA) and Iron Oxide Copper-Gold (IOCG) Deposits Form by a Combination of Igneous and Magmatic-Hydrothermal Processes: Evidence from the Chilean Iron Belt

被引:71
|
作者
Simon, Adam C. [1 ]
Knipping, Jaayke [2 ]
Reich, Martin [3 ]
Barra, Fernando [3 ]
Deditius, Artur P. [4 ]
Bilenker, Laura [5 ]
Childress, Tristan [1 ]
机构
[1] Univ Michigan, Dept Earth & Environm Sci, 1100 North Univ Ave, Ann Arbor, MI 48109 USA
[2] Leibniz Univ Hannover, Inst Mineral, Callinstr 3, D-30167 Hannover, Germany
[3] Univ Chile, FCFM, Dept Geol & Andean Geothermal, Ctr Excellence CEGA, Plaza Ercilla 803, Santiago, Chile
[4] Murdoch Univ, Sch Engn & Informat Technol, 90 South St, Murdoch, WA 6150, Australia
[5] Univ British Columbia, Dept Earth Ocean & Atmospher Sci, 2020-2207 Main Mall, Vancouver, BC V6T 1Z4, Canada
来源
基金
美国国家科学基金会;
关键词
ST-FRANCOIS MOUNTAINS; RARE-EARTH-ELEMENT; HETEROGENEOUS BUBBLE NUCLEATION; LACO MAGNETITE DEPOSIT; FIELD EVIDENCE BEARING; SOUTHEAST MISSOURI; FLUID INCLUSIONS; RHYOLITIC MELTS; SILICATE MELTS; TRACE-ELEMENTS;
D O I
10.5382/SP.21.06
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Iron oxide copper-gold (IOCG) and Kiruna-type iron oxide-apatite (IOA) deposits are commonly spatially and temporally associated with one another, and with coeval magmatism. Here, we use trace clement concentrations in magnetite and pyrite, Fe and O stable isotope abundances of magnetite and hematite, H isotopes of magnetite and actinolite, and Re-Os systematics of magnetite from the Los Colorados Kiruna-type 10A deposit in the Chilean iron belt to develop a new genetic model that explains IOCC and IOA deposits as a continuum produced by a combination of igneous and magmatic-hydrothermal processes. The concentrations of [Al + Mn] and [Ti + V] are highest in magnetite cores and decrease systematically from core to rim, consistent with growth of magnetite cores from a silicate melt, and rims from a cooling magmatic-hydrothermal fluid. Almost all bulk delta O-18 values in magnetite are within the range of 0 to 5 parts per thousand, and bulk delta Fe-56 for magnetite are within the range 0 to 0.8 parts per thousand of Fe isotopes, both of which indicate a magmatic source for O and Fe. The values of (delta O-18 and delta D for actinolite, which is paragenetically equivalent to magnetite, are, respectively, 6.46 +/- 0.56 and -59.3 +/- 1.7 parts per thousand, indicative of a mantle source. Pyrite grains consistently yield Co/Ni ratios that exceed unity, and imply precipitation of pyrite from an ore fluid evolved from an intermediate to mafic magma. The calculated initial Os-187/Os-18(8) ratio (Os-i) for magnetite from Los Colorados is 1.2, overlapping Os-i values for Chilean porphyry-Cu deposits, and consistent with an origin from juvenile magma. Together, the data are consistent with a geologic model wherein (1) magnetite microlites crystallize as a near-liquidus phase from an intermediate to mafic silicate melt; (2) magnetite microlites serve as nucleation sites for fluid bubbles and promote volatile saturation of the melt; (3) the volatile phase coalesces and encapsulates magnetite microlites to form a magnetite-fluid suspension; (4) the suspension scavenges Fe, Cu, Au, S, Cl, P, and rare earth elements (REE) from the melt; (5) the suspension ascends from the host magma during regional extension; (6) as the suspension ascends, originally igneous magnetite microlites grow larger by sourcing Fe from the cooling magmatic-hydrothermal fluid; (7) in deep-seated crustal faults, magnetite crystals are deposited to form a Kiruna-type IOA deposit due to decompression of the magnetite-fluid suspension; and (8) the further ascending fluid transports Fe, Cu, Au, and S to shallower levels or lateral distal zones of the system where hematite, magnetite, and sulfides precipitate to form IOCG deposits. The model explains the globally observed temporal and spatial relationship between magmatism and IOA and IOCG deposits, and provides a valuable conceptual framework to define exploration strategies.
引用
收藏
页码:89 / 114
页数:26
相关论文
共 50 条
  • [21] Paleoproterozoic Iron Oxide Apatite (IOA) and Iron Oxide-Copper-Gold (IOCG) mineralization in the East Arm Basin, Northwest Territories, Canada
    Potter, E. G.
    Corriveau, L.
    Kjarsgaard, B. A.
    [J]. CANADIAN JOURNAL OF EARTH SCIENCES, 2020, 57 (01) : 167 - 183
  • [22] Iron-Titanium Oxide-Apatite-Sulfide-Sulfate Microinclusions in Gabbro and Adakite from the Russian Far East Indicate Possible Magmatic Links to Iron Oxide-Apatite and Iron Oxide-Copper-Gold Deposits
    Kepezhinskas, Pavel
    Berdnikov, Nikolai
    Krutikova, Valeria
    Kozhemyako, Nadezhda
    [J]. MINERALS, 2024, 14 (02)
  • [23] A Special Issue Devoted to Proterozoic Iron Oxide-Apatite (±REE) and Iron Oxide Copper-Gold and Affiliated Deposits of Southeast Missouri, USA, and the Great Bear Magmatic Zone, Northwest Territories, Canada
    Slack, John F.
    Corriveau, Louise
    Hitzman, Murray W.
    [J]. ECONOMIC GEOLOGY, 2016, 111 (08) : 1803 - 1814
  • [24] Magnetic and Gravity Gradiometry Framework for Mesoproterozoic Iron Oxide-Apatite and Iron Oxide-Copper-Gold Deposits, Southeast Missouri
    McCafferty, Anne E.
    Phillips, Jeffrey D.
    Driscoll, Rhonda L.
    [J]. ECONOMIC GEOLOGY, 2016, 111 (08) : 1859 - 1882
  • [25] Iron Oxide Copper-Gold (IOCG) Deposits through Earth History: Implications for Origin, Lithospheric Setting, and Distinction from Other Epigenetic Iron Oxide Deposits
    Groves, David I.
    Bierlein, Frank P.
    Meinert, Lawrence D.
    Hitzman, Murray W.
    [J]. ECONOMIC GEOLOGY, 2010, 105 (03) : 641 - 654
  • [26] Magmatic-hydrothermal processes within an evolving Earth: Iron oxide-copper-gold and porphyry Cu ± Mo ± Au deposits
    Richards, Jeremy P.
    Mumin, A. Hamid
    [J]. GEOLOGY, 2013, 41 (07) : 767 - 770
  • [27] Constraints on ages of magmatism and iron oxide-apatite (IOA) and iron oxide-copper-gold (IOCG) mineral deposit formation in the Mesoproterozoic St. Francois Mountains Terrane of Southeast Missouri, USA
    Day, Warren C.
    Aleinikoff, John N.
    du Bray, Edward
    Ayuso, Robert A.
    [J]. MINERAL RESOURCES TO DISCOVER, VOLS 1-4, 2017, : 855 - 858
  • [28] Global Fe–O isotope correlation reveals magmatic origin of Kiruna-type apatite-iron-oxide ores
    Valentin R. Troll
    Franz A. Weis
    Erik Jonsson
    Ulf B. Andersson
    Seyed Afshin Majidi
    Karin Högdahl
    Chris Harris
    Marc-Alban Millet
    Sakthi Saravanan Chinnasamy
    Ellen Kooijman
    Katarina P. Nilsson
    [J]. Nature Communications, 10
  • [29] New contributions to the understanding of Kiruna-type iron oxide-apatite deposits revealed by magnetite ore and gangue mineral geochemistry at the El Romeral deposit, Chile
    Rojas, Paula A.
    Barra, Fernando
    Deditius, Artur
    Reich, Martin
    Simon, Adam
    Roberts, Malcolm
    Rojo, Mario
    [J]. ORE GEOLOGY REVIEWS, 2018, 93 : 413 - 435
  • [30] KIRUNA-TYPE IRON OXIDE-APATITE DEPOSITS, BAFQ DISTRICT, CENTRAL IRAN: FLUID-AIDED GENESIS OF FLUORAPATITE-MONAZITE-XENOTIME ASSEMBLAGES
    Taghipour, Sedigheh
    Kananian, Ali
    Harlov, Daniel
    Oberhaensli, Roland
    [J]. CANADIAN MINERALOGIST, 2015, 53 (03): : 479 - 495